G-MaP-SE
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G-MaP-SE: Guided Speech Enhancement via GMM-Based Prior Matching
arXiv:2606.08580v1 Announce Type: cross Abstract: Using speaker embeddings as conditioning can strengthen speech enhancement, but most methods either require clean enrollment audio or rely on embeddings extracted from noisy speech, which are fragile under noise and domain shift. We propose G-MaP-SE, a guided enhancement framework that builds a clean-speech embedding prior with a Gaussian Mixture Model (GMM) and refines a noisy conditioning embedding by matching it to this prior. The matched...